Extracellular Matrix-Based and Electrospun Scaffolding Systems for Vaginal Reconstruction

Author:

Farzamfar Saeed1,Elia Elissa1,Richer Megan1,Chabaud Stéphane1ORCID,Naji Mohammad2,Bolduc Stéphane13ORCID

Affiliation:

1. Centre de Recherche en Organogénèse Expérimentale/LOEX, Regenerative Medicine Division, CHU de Québec—Université Laval Research Center, Québec, QC G1J 1Z4, Canada

2. Urology and Nephrology Research Center, Shahid Beheshti University of Medical Sciences, Tehran 1666677951, Iran

3. Department of Surgery, Faculty of Medicine, Laval University, Québec, QC G1V 0A6, Canada

Abstract

Congenital vaginal anomalies and pelvic organ prolapse affect different age groups of women and both have significant negative impacts on patients’ psychological well-being and quality of life. While surgical and non-surgical treatments are available for vaginal defects, their efficacy is limited, and they often result in long-term complications. Therefore, alternative treatment options are urgently needed. Fortunately, tissue-engineered scaffolds are promising new treatment modalities that provide an extracellular matrix (ECM)-like environment for vaginal cells to adhere, secrete ECM, and be remodeled by host cells. To this end, ECM-based scaffolds or the constructs that resemble ECM, generated by self-assembly, decellularization, or electrospinning techniques, have gained attention from both clinicians and researchers. These biomimetic scaffolds are highly similar to the native vaginal ECM and have great potential for clinical translation. This review article aims to discuss recent applications, challenges, and future perspectives of these scaffolds in vaginal reconstruction or repair strategies.

Funder

CIHR grant

Publisher

MDPI AG

Subject

Bioengineering

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